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Genome-Wide Expression Profile of Maize Root Response to Phosphorus Deficiency Revealed by Deep Sequencing 被引量:1

Genome-Wide Expression Profile of Maize Root Response to Phosphorus Deficiency Revealed by Deep Sequencing
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摘要 Phosphorus (P) is one of the three primary macronutrients that are required in large amounts for plant growth and development. To better understand molecular mechanism of maize and identify relevant genes in response to phosphorus deficiency, we used Solexa/Illumina's digital gene expression (DGE) technology to investigate six genome-wide expression profiles of seedling roots of the low-P tolerant maize inbred line 178. DGE studies were conducted at 6, 24 and 72 h under both phosphorus deficient and sufficient conditions. Approximately 3.93 million raw reads for each sample were sequenced and 6 816 genes exhibited significant levels of differential expressions in at least one of three time points in response to P starvation. The number of genes with increased expression increased over time from 6 to 24 h, whereas genes with decreased expression were more abundant at 72 h, suggesting a gradual response process for P deficiency at different stages. Gene annotations illustrated that most of differentially expressed genes (DEGs) are involved in different cellular and molecular processes such as environmental adaptation and carbohydrate metabolism. The expression of some known genes identified in other plants, such as those involved in root architecture, P metabolism and transport were found to be altered at least two folds, indicating that the mechanisms of molecular and morphological adaptation to P starvation are conserved in plants. This study provides insight into the general molecular mechanisms underlying plant adaptation to low-P stress and thus may facilitate molecular breeding for improving P utilization in maize. Phosphorus (P) is one of the three primary macronutrients that are required in large amounts for plant growth and development. To better understand molecular mechanism of maize and identify relevant genes in response to phosphorus deficiency, we used Solexa/Illumina's digital gene expression (DGE) technology to investigate six genome-wide expression profiles of seedling roots of the low-P tolerant maize inbred line 178. DGE studies were conducted at 6, 24 and 72 h under both phosphorus deficient and sufficient conditions. Approximately 3.93 million raw reads for each sample were sequenced and 6 816 genes exhibited significant levels of differential expressions in at least one of three time points in response to P starvation. The number of genes with increased expression increased over time from 6 to 24 h, whereas genes with decreased expression were more abundant at 72 h, suggesting a gradual response process for P deficiency at different stages. Gene annotations illustrated that most of differentially expressed genes (DEGs) are involved in different cellular and molecular processes such as environmental adaptation and carbohydrate metabolism. The expression of some known genes identified in other plants, such as those involved in root architecture, P metabolism and transport were found to be altered at least two folds, indicating that the mechanisms of molecular and morphological adaptation to P starvation are conserved in plants. This study provides insight into the general molecular mechanisms underlying plant adaptation to low-P stress and thus may facilitate molecular breeding for improving P utilization in maize.
出处 《Journal of Integrative Agriculture》 SCIE CAS CSCD 2014年第6期1216-1229,共14页 农业科学学报(英文版)
基金 supported by the National Basic Research Program of China (2009CB118400) the 948 Project of Ministry of Agriculture of China (2011-G15-2 and 2013-Z38) the National Natural Science Foundation of China (31361140364 and 31171566) the Key Technologies R&D Program of China during the 12th Five-Year Plan period (2011BAD35B01).
关键词 MAIZE phosphorus efficiency ROOT digital gene expression maize, phosphorus efficiency, root, digital gene expression
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  • 1刘国栋,李振声,李继云.筛选磷高效小麦种质的磷源液相控制释放系统建立的原理和方法[J].中国农业科学,1997,30(2):70-76. 被引量:18
  • 2丁洪 李生秀.大豆自交系耐低P和对P肥效应的遗传差异[J].植物营养与肥料学报,1999,19(2):257-263.
  • 3Bunge-Metzger A. Closing the cycle: obstacles to efficient P management for improved global food security [M]. In phosphorus in the Global Environment: Transers, Cycles and management, H Tiessen(Ed.) New York: Wiley, 1995, 27--42.
  • 4Bake D E, Jarrell A E, et al. Phosphorus uptake from soils by corn hybrids selected for high and low phosphorus accumulation[J]. Agronomy Journal,1970, 62: 103-106.
  • 5Barber W D, Thomas W L,et al. Inheritance of relative phosphorus accumulcation in com(Zeamays L)[J]. Crop Science, 1967,7:104-107.
  • 6Gerloff G C. Intact-plant screening for tolerance of nutrient deficiency stress[J]. Plant and Soil, 1987, 99: 3-16.
  • 7Silva A E and Gabelman W H. Screening maize inbred lines for tolerance to low-P stress condition. Plant and Soil,1972,146:181-187.
  • 8Gourley J P,Allan D L,Russelle M P.Plant nutrient efficiency:A comprison of definitions and suggeste dimprovement.Plant and Soil,1994,158:29-37.
  • 9Alvaro eleuerio da silva,Gabelman W H.Screening maize inbred lines for tolerance to low-P stress condition.Plant and Soil,1992,146:181-187.
  • 10Graham R D.Breeding for nutritional characteristics in cereals.Advances in Plant Nutrition,1984,1:57-102.

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